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#include<stdio.h>
#define STORAGESIZE 5
#define MAX_NAME_LEN 2

typedef struct{
      char name[MAX_NAME_LEN];
      char feild1;
      char feild2;
  } strt;
  static strt storage[5];

main(){
 unsigned char *stp=(unsigned char*)&strt;
 unsigned char*stp_end=(unsigned char*)(&strt+STORAGESIZE);
 int i;

 for(i=0;stp!=stp_end;stp++,i++)
   printf("byte%d: %x\n",i,*stp);

}

I am trying to confirm that all of a structure declared as static will be initialized to 0 except possibly the padding portions of it. and I got errors when attempting to compile the above: statictable.c:

In function 'main':
statictable.c:13:38: error: expected expression before 'strt'
statictable.c:14:42: error: expected expression before 'strt'


What could possibly be wrong in an assignment of a casted pointer to another pointer.Although I know this could turn out to be rudimentary.

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1  
Always specify the return type (int) for main(); C99 (and C11) require it. On the whole, it is best to return a value (0 for success) from the program, though C99 does allow you to omit it and it then returns zero — but C89 does not allow you to omit the return value. You can't have it both ways. –  Jonathan Leffler Aug 6 '12 at 4:52

2 Answers 2

up vote 4 down vote accepted

In the line:

unsigned char *stp=(unsigned char*)&strt;

You give pointer to strt which is a type, not a variable. iIt's like &int (invalid as well :) ), you shuold probably do:

unsigned char *stp=(unsigned char*)storage;

And same for the next line.

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You probably don't need the & before the array name. It doesn't matter in the first line, but it surely does in the second! –  Jonathan Leffler Aug 6 '12 at 4:54
    
You're right. fixed. –  MByD Aug 6 '12 at 5:49

In these two lines:

unsigned char *stp=(unsigned char*)&strt;
unsigned char*stp_end=(unsigned char*)(&strt+STORAGESIZE);

You're trying to take the address of the type: strt. You want the address of your strt array: storage.

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Probably not the address of the array; just the name of the array. It doesn't matter too much in the first line; it does matter (a lot) in the second line. –  Jonathan Leffler Aug 6 '12 at 4:54

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